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Open AccessJournal ArticleDOI

Blind Joint MIMO Channel Estimation and Decoding

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TLDR
This work proposes a blind decoding algorithm for multiple-input multiple-output (MIMO) decoding when channel-state information (CSI) is unknown to both the transmitter and receiver, imposing a similar performance penalty as space-time coding techniques without the loss of rate incurred by those techniques.
Abstract
We propose a method for multiple-input multiple-output (MIMO) decoding when channel-state information (CSI) is unknown to both the transmitter and receiver. The proposed method requires some structure in the transmitted signal for the decoding to be effective, in particular that the underlying sources are drawn from a hypercubic space. Our proposed technique fits a minimum volume parallelepiped to the received samples. This problem can be expressed as a non-convex optimization problem that can be solved with high probability by gradient descent. Our blind decoding algorithm can be used when communicating over unknown MIMO wireless channels using either binary phase-shift keying or MPAM modulation. We apply our technique to jointly estimate MIMO-channel gain matrices and decode the underlying transmissions with only knowledge of the transmitted constellation and without the use of pilot symbols. Our results provide theoretical guarantees that the proposed algorithm is correct when applied to MIMO systems with four or fewer transmit antennas. Empirical results show small sample size requirements, making this algorithm suitable for block-fading channels with coherence times typically seen in practice. Our approach has a loss of less than 3 dB compared to zero forcing with perfect CSI, imposing a similar performance penalty as space-time coding techniques without the loss of rate incurred by those techniques.

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Proceedings ArticleDOI

Blind Distributed MU-MIMO for IoT Networking over VHF Narrowband Spectrum

TL;DR: This paper explores the 150-174 MHz spectrum for long range IoT networks comprising unlicensed MURS and licensed VHF narrowbands and demonstrates the efficacy of Blind Distributed MU-MIMO through a real wide area deployment.
Journal ArticleDOI

A Tensor-Based Approach to Joint Channel Estimation/Data Detection in Flexible Multicarrier MIMO Systems

TL;DR: The design of blind receivers for flexible MIMO FBMC systems, unifying a number of existing FBMC schemes, is considered through a tensor-based approach, which is shown to encompass existing joint channel estimation and data detection approaches as special cases, adding to their understanding and paving the way to further developments.
Journal ArticleDOI

Dual-Blind Deconvolution for Overlaid Radar-Communications Systems

TL;DR: A semidefinite program to estimate the unknown target and communications parameters using the theories of positive-hyperoctant trigonometric polynomials (PhTP) and it is shown that the minimum number of samples required for perfect recovery scale logarithmically with the maximum of the radar targets and communications paths rather than their sum.
Proceedings ArticleDOI

Volume Based Opportunistic Interference Alignment over Correlated MIMO IBC

TL;DR: An OIA technique based on the volume of the parallelepiped formed by the interfering signals is proposed and results show that the proposed technique achieves a substantial improvement over conventional techniques especially at high signal-to-noise ratio (SNR) under correlated channels.
Journal ArticleDOI

Sub-Nyquist optical pulse sampling for photonic blind source separation

- 18 May 2022 - 
TL;DR: In this article , an optical pulse sampling method for photonic blind source separation is proposed and experimentally demonstrated, and the linear power range measurement shows that the sampling system with ultra-narrow optical pulse achieves a 30dB power dynamic range.
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TL;DR: A generalization of orthogonal designs is shown to provide space-time block codes for both real and complex constellations for any number of transmit antennas and it is shown that many of the codes presented here are optimal in this sense.
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TL;DR: In this article, the Fulkerson Prize was won by the Mathematical Programming Society and the American Mathematical Society for proving polynomial time solvability of problems in convexity theory, geometry, and combinatorial optimization.